Rewrite user-facing text (GUI, manual, CLAUDE.md) in a professional register

Revised the GUI explanations, on-screen labels and dialogs, the HTML user
manual, and CLAUDE.md to a formal, consistent tone: removed casual phrasing
and contractions, standardised terminology, and documented the new parallel
"--workers" option (CLI) and "Parallel workers" control (GUI). Also added a
manual troubleshooting entry for full-disk GPS loss and a parallelism note to
CLAUDE.md. No functional changes.

Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
This commit is contained in:
NoahC 2026-06-26 11:54:12 +02:00
parent 4f1ae7f7c4
commit 90a9059544
3 changed files with 158 additions and 130 deletions

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@ -1,11 +1,12 @@
# FireMapper — Session Post-Processing # FireMapper — Session Post-Processing
Tools that turn raw FireMapper capture sessions into mapping-ready imagery: Tools that convert raw FireMapper capture sessions into mapping-ready imagery:
embed GPS/orientation metadata into the photos, stretch the radiometric thermal they embed GPS/orientation metadata into the images, stretch the radiometric
frames for viewing, and plot trigger points + image footprints on a map. thermal frames for visualisation, and plot trigger points and image footprints
on a map.
This repo contains **only the Python tools** — the capture data (session folders, This repository contains **only the Python tools** — the capture data (session
`*_exif/`, `*_stretched/`) is large (tens of GB) and is git-ignored. folders, `*_exif/`, `*_stretched/`) is large (tens of GB) and is git-ignored.
## Hardware / data ## Hardware / data
@ -92,7 +93,7 @@ Functions:
`XMP-GPano:Pose{Heading,Pitch,Roll}Degrees` (the `XMP-Camera:Pose*` namespace is **not** `XMP-GPano:Pose{Heading,Pitch,Roll}Degrees` (the `XMP-Camera:Pose*` namespace is **not**
writable in stock exiftool). It uses this geometry — **not** the raw IMU. writable in stock exiftool). It uses this geometry — **not** the raw IMU.
## Conventions & gotchas ## Conventions & caveats
- **exiftool** is required by the embed step. Resolved from PATH, a local - **exiftool** is required by the embed step. Resolved from PATH, a local
`tools/exiftool.exe`, the OliverBetz user install (`%LOCALAPPDATA%\Programs\ExifTool`), `tools/exiftool.exe`, the OliverBetz user install (`%LOCALAPPDATA%\Programs\ExifTool`),
@ -108,8 +109,14 @@ writable in stock exiftool). It uses this geometry — **not** the raw IMU.
(robust to outliers); configurable. Values are radiometric signal, not °C. (robust to outliers); configurable. Values are radiometric signal, not °C.
- **Footprints** assume **flat ground** at a user-set elevation (default 110 m, the Speyer - **Footprints** assume **flat ground** at a user-set elevation (default 110 m, the Speyer
area). There is no terrain model. area). There is no terrain model.
- **Sweep side:** if footprints/headings come out mirrored vs a known flight, flip - **Parallelism:** both steps fan out across a configurable worker pool
`SCAN_SIGN` at the top of `session_map.py`. (`embed.default_workers()` = `min(cpu, 16)`; CLI `--workers N`, GUI "Parallel workers").
`embed.run_exiftool_parallel()` splits the per-file argument segments round-robin across
several concurrent exiftool processes and is shared by both tools; copy/render run on a
`ThreadPoolExecutor`. Tk variables are read on the main thread and captured before the
worker thread is spawned. Designed for SSD/NVMe storage, where concurrent I/O helps.
- **Sweep side:** if footprints or headings appear mirrored relative to a known flight,
flip `SCAN_SIGN` at the top of `session_map.py`.
- **Tkinter:** never create `ttk.Style()` before the root window — it spawns a stray - **Tkinter:** never create `ttk.Style()` before the root window — it spawns a stray
default root and `StringVar`s bind to the wrong one (entries render blank). The style is default root and `StringVar`s bind to the wrong one (entries render blank). The style is
created with the app as master inside `__init__`, and all vars are parented to it. created with the app as master inside `__init__`, and all vars are parented to it.

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@ -1,23 +1,26 @@
#!/usr/bin/env python3 #!/usr/bin/env python3
""" """
FireMapper - Session Post-Processing (GUI) FireMapper - Session Post-Processing (graphical interface)
========================================== ==========================================================
A friendly front-end for the two FireMapper post-processing steps: Graphical front-end for the FireMapper post-processing workflow:
1. Embed GPS & metadata - writes each frame's JSON sidecar (GPS, heading, 1. Embed GPS & metadata - writes each frame's JSON sidecar (GPS, orientation,
time, lens, ...) into EXIF/XMP of tagged image copies, ready for mapping capture time, lens) into the EXIF/XMP of tagged image copies for use in
software. (wraps embed_metadata.py) mapping software. (wraps embed_metadata.py)
2. Thermal stretch - rescales the whole session's 16-bit radiometric 2. Thermal stretch - rescales the session's 16-bit radiometric thermal frames
thermal frames into one shared brightness window and saves viewable to a single shared brightness window and saves 8-bit images in the chosen
8-bit images in a heat-map palette. (wraps stretch_thermal.py) palette. (wraps stretch_thermal.py)
Just run: python firemapper_gui.py 3. Map - plots trigger points and image footprints on OpenStreetMap.
(wraps session_map.py)
No command line needed - pick a session folder, read the on-screen Launch with: python firemapper_gui.py
explanation, and click the button. Long jobs run in the background with a
progress bar; your original files are never modified. Select a session folder, review the description on each tab, set the options,
and start the operation. Long-running tasks execute on a background thread with
a progress indicator. Original files are never modified.
""" """
from __future__ import annotations from __future__ import annotations
@ -106,9 +109,9 @@ class FireMapperGUI(tk.Tk):
ttk.Label(head, text="FireMapper - Session Post-Processing", ttk.Label(head, text="FireMapper - Session Post-Processing",
font=("Segoe UI Semibold", 15)).pack(anchor="w") font=("Segoe UI Semibold", 15)).pack(anchor="w")
ttk.Label(head, foreground="#555", wraplength=900, justify="left", ttk.Label(head, foreground="#555", wraplength=900, justify="left",
text="Turn a raw capture session into mapping-ready imagery. " text="Convert a raw capture session into mapping-ready imagery. Select a "
"Pick a session folder, then run either step. Originals are " "session folder and run any step. Original files are never modified; "
"never changed - results are written to new folders.").pack(anchor="w") "all results are written to separate output folders.").pack(anchor="w")
ttk.Separator(self).pack(fill="x", padx=PAD, pady=(6, 8)) ttk.Separator(self).pack(fill="x", padx=PAD, pady=(6, 8))
@staticmethod @staticmethod
@ -142,7 +145,8 @@ class FireMapperGUI(tk.Tk):
ttk.Spinbox(row, from_=1, to=(os.cpu_count() or 32), increment=1, width=6, ttk.Spinbox(row, from_=1, to=(os.cpu_count() or 32), increment=1, width=6,
textvariable=self.workers).pack(side="left") textvariable=self.workers).pack(side="left")
ttk.Label(row, foreground="#777", ttk.Label(row, foreground="#777",
text=f" threads / exiftool processes (you have {os.cpu_count()} cores)" text=f" concurrent workers for copying, rendering and exiftool "
f"({os.cpu_count()} logical cores available)"
).pack(side="left", padx=6) ).pack(side="left", padx=6)
return row return row
@ -165,15 +169,15 @@ class FireMapperGUI(tk.Tk):
tab = ttk.Frame(nb, padding=PAD) tab = ttk.Frame(nb, padding=PAD)
nb.add(tab, text=" 1. Embed GPS & Metadata ") nb.add(tab, text=" 1. Embed GPS & Metadata ")
ttk.Label(tab, text="Embed GPS & metadata into images", font=HEADING).pack(anchor="w") ttk.Label(tab, text="Embed GPS & Metadata", font=HEADING).pack(anchor="w")
self._explain(tab, self._explain(tab,
"Copies every image in the session and writes its matching JSON data into " "Creates a tagged copy of every image in the session and writes the "
"the copy's EXIF/XMP tags: GPS position, camera heading / pitch / roll, UTC " "corresponding JSON values into its EXIF/XMP metadata: GPS position, camera "
"capture time, lens & exposure, plus the complete JSON in the comment field. " "heading, pitch and roll, UTC capture time, lens and exposure, and the complete "
"The tagged copies drop straight into mapping / photogrammetry tools " "JSON record in the comment field. The tagged copies are compatible with "
"(Pix4D, Metashape, QGIS, ...), which read the embedded GPS to place each " "photogrammetry and GIS applications (Pix4D, Metashape, QGIS), which read the "
"photo on the map. Requires exiftool - it is found automatically, and " "embedded GPS to position each image. Requires exiftool, which is located "
"installed for you the first time if missing." "automatically and installed on first use if it is not already present."
).pack(fill="x", pady=(4, 10)) ).pack(fill="x", pady=(4, 10))
self.embed_session = tk.StringVar(self, value=autodetect_session()) self.embed_session = tk.StringVar(self, value=autodetect_session())
@ -183,15 +187,15 @@ class FireMapperGUI(tk.Tk):
self._folder_row(tab, "Session folder", self.embed_session).pack(fill="x", pady=3) self._folder_row(tab, "Session folder", self.embed_session).pack(fill="x", pady=3)
self._folder_row(tab, "Output folder", self.embed_out).pack(fill="x", pady=3) self._folder_row(tab, "Output folder", self.embed_out).pack(fill="x", pady=3)
ttk.Label(tab, text="Leave output blank to use <session>_exif next to the session.", ttk.Label(tab, text="If left blank, output is written to <session>_exif beside the session.",
foreground="#777").pack(anchor="w", padx=(16, 0)) foreground="#777").pack(anchor="w", padx=(16, 0))
gps = ttk.LabelFrame(tab, text="GPS source for camera frames", padding=8) gps = ttk.LabelFrame(tab, text="GPS source for camera frames", padding=8)
gps.pack(fill="x", pady=(10, 4)) gps.pack(fill="x", pady=(10, 4))
ttk.Radiobutton(gps, variable=self.embed_gps, value="position", ttk.Radiobutton(gps, variable=self.embed_gps, value="position",
text="Fused INS (position) - most accurate [recommended]").pack(anchor="w") text="Fused INS (position) - highest accuracy (recommended)").pack(anchor="w")
ttk.Radiobutton(gps, variable=self.embed_gps, value="gps", ttk.Radiobutton(gps, variable=self.embed_gps, value="gps",
text="Raw GNSS (gps) - bare satellite fix").pack(anchor="w") text="Raw GNSS (gps) - uncorrected satellite fix").pack(anchor="w")
ttk.Label(gps, foreground="#777", ttk.Label(gps, foreground="#777",
text="Thermal frames have no INS solution and always use raw GNSS.").pack(anchor="w") text="Thermal frames have no INS solution and always use raw GNSS.").pack(anchor="w")
@ -199,7 +203,7 @@ class FireMapperGUI(tk.Tk):
adv.pack(fill="x", pady=(8, 2)) adv.pack(fill="x", pady=(8, 2))
ttk.Label(adv, text="exiftool path", width=16).pack(side="left") ttk.Label(adv, text="exiftool path", width=16).pack(side="left")
ttk.Entry(adv, textvariable=self.embed_exif).pack(side="left", fill="x", expand=True) ttk.Entry(adv, textvariable=self.embed_exif).pack(side="left", fill="x", expand=True)
ttk.Label(adv, text="(optional - auto)", foreground="#777").pack(side="left", padx=6) ttk.Label(adv, text="(optional; auto-detected)", foreground="#777").pack(side="left", padx=6)
self._workers_row(tab).pack(fill="x", pady=(8, 2)) self._workers_row(tab).pack(fill="x", pady=(8, 2))
@ -214,15 +218,16 @@ class FireMapperGUI(tk.Tk):
tab = ttk.Frame(nb, padding=PAD) tab = ttk.Frame(nb, padding=PAD)
nb.add(tab, text=" 2. Thermal Stretch ") nb.add(tab, text=" 2. Thermal Stretch ")
ttk.Label(tab, text="Stretch thermal frames for viewing", font=HEADING).pack(anchor="w") ttk.Label(tab, text="Stretch Thermal Frames for Visualisation", font=HEADING).pack(anchor="w")
self._explain(tab, self._explain(tab,
"The thermal camera records 16-bit radiometric frames whose values fill only " "The thermal camera records 16-bit radiometric frames that occupy only a small "
"a tiny part of the range, so raw files look almost black and flicker between " "portion of the available range; consequently the raw files appear nearly black "
"frames. This finds ONE brightness window shared by the whole session and " "and vary in brightness from frame to frame. This step determines a single "
"stretches every frame into it, saving easy-to-view 8-bit images. Because all " "brightness window for the entire session and rescales every frame into it, "
"frames share the window, hot and cold areas stay consistent across the flight. " "producing viewable 8-bit images. Because all frames share one window, warm and "
"Values are radiometric signal (proportional to temperature), not calibrated " "cool areas remain consistent across the flight. Pixel values represent "
"degrees. Tip: click 'Preview palettes' to compare the look before processing." "radiometric signal (proportional to temperature), not calibrated degrees. Use "
"'Preview palettes' to compare the available palettes before processing."
).pack(fill="x", pady=(4, 10)) ).pack(fill="x", pady=(4, 10))
self.th_session = tk.StringVar(self, value=autodetect_session()) self.th_session = tk.StringVar(self, value=autodetect_session())
@ -234,7 +239,7 @@ class FireMapperGUI(tk.Tk):
self._folder_row(tab, "Session folder", self.th_session).pack(fill="x", pady=3) self._folder_row(tab, "Session folder", self.th_session).pack(fill="x", pady=3)
self._folder_row(tab, "Output folder", self.th_out).pack(fill="x", pady=3) self._folder_row(tab, "Output folder", self.th_out).pack(fill="x", pady=3)
ttk.Label(tab, text="Leave output blank to use <session>/thermal_stretched.", ttk.Label(tab, text="If left blank, output is written to <session>/thermal_stretched.",
foreground="#777").pack(anchor="w", padx=(16, 0)) foreground="#777").pack(anchor="w", padx=(16, 0))
opts = ttk.Frame(tab) opts = ttk.Frame(tab)
@ -252,8 +257,8 @@ class FireMapperGUI(tk.Tk):
self.th_embed = tk.BooleanVar(self, value=True) self.th_embed = tk.BooleanVar(self, value=True)
ttk.Checkbutton(tab, variable=self.th_embed, ttk.Checkbutton(tab, variable=self.th_embed,
text="Embed GPS / orientation metadata into the stretched PNGs " text="Embed GPS and orientation metadata into the stretched PNGs "
"(needs exiftool)").pack(anchor="w", pady=(6, 0)) "(requires exiftool)").pack(anchor="w", pady=(6, 0))
self._workers_row(tab).pack(fill="x", pady=(6, 2)) self._workers_row(tab).pack(fill="x", pady=(6, 2))
@ -279,21 +284,21 @@ class FireMapperGUI(tk.Tk):
if TkinterMapView is None: if TkinterMapView is None:
ttk.Label(tab, foreground="#a00000", wraplength=600, justify="left", ttk.Label(tab, foreground="#a00000", wraplength=600, justify="left",
text="The map needs the 'tkintermapview' package.\n\n" text="The map requires the 'tkintermapview' package.\n\n"
"Install it from a terminal with:\n" "Install it from a terminal:\n"
" pip install tkintermapview\n\n" " pip install tkintermapview\n\n"
"then reopen this program.").pack(anchor="w", pady=20) "then restart the application.").pack(anchor="w", pady=20)
return return
ttk.Label(tab, text="Trigger points & image footprints on OpenStreetMap", ttk.Label(tab, text="Trigger Points & Image Footprints on OpenStreetMap",
font=HEADING).pack(anchor="w") font=HEADING).pack(anchor="w")
self._explain(tab, self._explain(tab,
"Tick the sessions to plot, then click 'Show on map'. Each image becomes a " "Select the sessions to display and click 'Show on map'. Each image is shown as "
"trigger point (its GPS position) and, optionally, an oblique footprint - the " "a trigger point (its GPS position) and, optionally, as an oblique footprint: "
"ground patch the photo covers, projected from the camera off-nadir angle " "the ground area the image covers, projected from the camera off-nadir angle "
"(cam25 = 25 deg, cam45 = 45 deg), the cross-track scan angle, the aircraft " "(cam25 = 25 deg, cam45 = 45 deg), the cross-track scan angle, the aircraft "
"attitude and the height above ground. Footprints assume flat ground at the " "attitude and the height above ground. Footprints assume flat terrain at the "
"elevation set below. Needs an internet connection for the map tiles." "elevation specified below. An internet connection is required for the map tiles."
).pack(fill="x", pady=(4, 8)) ).pack(fill="x", pady=(4, 8))
body = ttk.Frame(tab) body = ttk.Frame(tab)
@ -341,7 +346,7 @@ class FireMapperGUI(tk.Tk):
field("Thermal off-nadir", self.map_toff) field("Thermal off-nadir", self.map_toff)
field("Plot every Nth", self.map_step) field("Plot every Nth", self.map_step)
ttk.Label(opt, foreground="#777", ttk.Label(opt, foreground="#777",
text="Thermal footprints need the FOV above.").pack(anchor="w", pady=(2, 4)) text="Thermal footprints require the field-of-view values above.").pack(anchor="w", pady=(2, 4))
ttk.Checkbutton(opt, text="Trigger points", variable=self.map_markers).pack(anchor="w") ttk.Checkbutton(opt, text="Trigger points", variable=self.map_markers).pack(anchor="w")
ttk.Checkbutton(opt, text="Footprints", variable=self.map_foot).pack(anchor="w") ttk.Checkbutton(opt, text="Footprints", variable=self.map_foot).pack(anchor="w")
ttk.Checkbutton(opt, text="Cameras (blue)", variable=self.map_cam).pack(anchor="w") ttk.Checkbutton(opt, text="Cameras (blue)", variable=self.map_cam).pack(anchor="w")
@ -389,7 +394,7 @@ class FireMapperGUI(tk.Tk):
return return
sel = [s for s, v in self.session_vars.items() if v.get()] sel = [s for s, v in self.session_vars.items() if v.get()]
if not sel: if not sel:
messagebox.showwarning("No sessions", "Tick at least one session to plot.") messagebox.showwarning("No sessions", "Select at least one session to display.")
return return
try: try:
ground = float(self.map_ground.get()) ground = float(self.map_ground.get())

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@ -47,20 +47,20 @@
<body> <body>
<header><div class="wrap"> <header><div class="wrap">
<h1>FireMapper — Session Post-Processing</h1> <h1>FireMapper — Session Post-Processing</h1>
<p>User manual for turning a raw capture session into mapping-ready imagery.</p> <p>User manual for converting a raw capture session into mapping-ready imagery.</p>
</div></header> </div></header>
<main> <main>
<p>FireMapper records, for every photo, a small <code>.json</code> file next to it <p>For every image it captures, FireMapper writes a small <code>.json</code> file alongside
containing GPS position, platform/IMU attitude, lens and timing. These tools read those it containing the GPS position, platform/IMU attitude, lens parameters and timing. These
files and:</p> tools read those files and:</p>
<ul> <ul>
<li><b>Embed</b> the data into the photos' EXIF/XMP so mapping software can place each <li><b>Embed</b> the data into each image's EXIF/XMP so that mapping software can position
image on the map;</li> it geographically;</li>
<li><b>Stretch</b> the dark 16-bit thermal frames into easy-to-view colour images;</li> <li><b>Stretch</b> the low-contrast 16-bit thermal frames into clear colour images;</li>
<li><b>Map</b> the trigger points and image footprints on OpenStreetMap.</li> <li><b>Map</b> the trigger points and image footprints on OpenStreetMap.</li>
</ul> </ul>
<p class="note"><b>Your originals are never changed.</b> Every step writes results into a <p class="note"><b>Original files are never modified.</b> Every step writes its results to a
new folder.</p> new folder.</p>
<nav> <nav>
@ -76,95 +76,104 @@ new folder.</p>
<section id="start"> <section id="start">
<h2>Getting started</h2> <h2>Getting started</h2>
<ol> <ol>
<li>Make sure Python 3 is installed, plus the packages: <li>Ensure Python 3 is installed, together with the required packages:
<pre><code>pip install Pillow numpy tkintermapview requests</code></pre></li> <pre><code>pip install Pillow numpy tkintermapview requests</code></pre></li>
<li>Put the four scripts (<code>firemapper_gui.py</code>, <code>embed_metadata.py</code>, <li>Place the four scripts (<code>firemapper_gui.py</code>, <code>embed_metadata.py</code>,
<code>stretch_thermal.py</code>, <code>session_map.py</code>) in one folder. <code>stretch_thermal.py</code>, <code>session_map.py</code>) in a single folder.
Placing them next to your session folders (or next to a parent folder that groups Locating them alongside your session folders (or alongside a parent folder that groups
several flight strips) lets the program find your data automatically.</li> several flight strips) allows the program to detect your data automatically.</li>
<li>Start the program: <li>Start the application:
<pre><code>python firemapper_gui.py</code></pre> <pre><code>python firemapper_gui.py</code></pre>
A window opens with three tabs. Pick a tab, read the on-screen description, fill in A window opens with three tabs. Select a tab, review the on-screen description, set the
the options, and click the button.</li> options, and start the operation.</li>
</ol> </ol>
<p class="muted">The program finds session folders automatically — any folder that <p class="muted">The program detects session folders automatically: any folder containing a
contains a <code>thermal/</code>, a <code>cam…/</code> folder or a <code>thermal/</code> directory, a <code>cam…/</code> directory, or a
<code>manifest.json</code> counts as a session, and it also looks one level inside <code>manifest.json</code> file is treated as a session. Grouping folders (for example
grouping folders (e.g. <code>Streifen/</code>).</p> <code>Streifen/</code>) are also scanned one level deep.</p>
</section> </section>
<section id="embed"> <section id="embed">
<h2><span class="pill blue">Tab 1</span> Embed GPS &amp; Metadata</h2> <h2><span class="pill blue">Tab 1</span> Embed GPS &amp; Metadata</h2>
<p>Writes each photo's JSON data into a tagged <b>copy</b> of the image: GPS position, <p>Writes each image's JSON data into a tagged <b>copy</b> of the file: GPS position,
true camera pointing direction, capture time (UTC), lens &amp; exposure, and the full true camera pointing direction, capture time (UTC), lens and exposure, and the complete
JSON in the comment field. The copies drop straight into Pix4D, Metashape, QGIS, etc.</p> JSON record in the comment field. The copies are compatible with Pix4D, Metashape, QGIS
and similar applications.</p>
<h3>How to use</h3> <h3>How to use</h3>
<ol> <ol>
<li><b>Session folder</b>auto-filled with the newest session; or click <li><b>Session folder</b>pre-filled with the most recent session, or selected via
<kbd>Browse…</kbd>.</li> <kbd>Browse…</kbd>.</li>
<li><b>Output folder</b> — leave blank to write to <code>&lt;session&gt;_exif</code> <li><b>Output folder</b> — if left blank, results are written to
next to the session.</li> <code>&lt;session&gt;_exif</code> beside the session.</li>
<li><b>GPS source</b><i>Fused INS (position)</i> is the most accurate (recommended); <li><b>GPS source</b><i>Fused INS (position)</i> provides the highest accuracy
<i>Raw GNSS (gps)</i> uses the bare satellite fix. Thermal frames always use raw GNSS.</li> (recommended); <i>Raw GNSS (gps)</i> uses the uncorrected satellite fix. Thermal
<li>Click <b>Embed metadata</b>. Progress and a log appear; when done you can open the frames always use raw GNSS.</li>
output folder.</li> <li><b>Parallel workers</b> — the number of images copied and tagged concurrently
(default: derived from the available CPU cores). Higher values are faster on
SSD/NVMe storage.</li>
<li>Click <b>Embed metadata</b>. A progress bar and log are displayed; on completion the
output folder can be opened.</li>
</ol> </ol>
<p class="muted">Requires <b>exiftool</b>. It is found automatically, and installed for <p class="muted">Requires <b>exiftool</b>, which is located automatically and installed on
you the first time if missing (Windows). Leave the “exiftool path” field blank.</p> first use if it is not already present (Windows). Leave the “exiftool path” field blank.</p>
</section> </section>
<section id="thermal"> <section id="thermal">
<h2><span class="pill orange">Tab 2</span> Thermal Stretch</h2> <h2><span class="pill orange">Tab 2</span> Thermal Stretch</h2>
<p>The thermal camera records 16-bit radiometric frames whose values fill only a tiny <p>The thermal camera records 16-bit radiometric frames that occupy only a small portion
part of the range, so the raw files look almost black and flicker between frames. This of the available range; consequently the raw files appear nearly black and vary in
finds <b>one brightness window shared by the whole session</b> and stretches every frame brightness from frame to frame. This step determines <b>a single brightness window for the
into it, saving easy-to-view 8-bit images. Because all frames use the same window, hot entire session</b> and rescales every frame into it, producing viewable 8-bit images.
and cold areas stay consistent across the flight.</p> Because all frames share one window, warm and cool areas remain consistent across the
<div class="note">Values are radiometric <b>signal</b> (proportional to temperature), flight.</p>
not calibrated degrees.</div> <div class="note">Pixel values represent radiometric <b>signal</b> (proportional to
temperature), not calibrated degrees.</div>
<h3>Options</h3> <h3>Options</h3>
<table> <table>
<tr><th>Palette</th><td><b>inferno</b> / <b>ironbow</b>heat colour maps (dark = cool, <tr><th>Palette</th><td><b>inferno</b> / <b>ironbow</b>thermal colour maps (dark = cool,
bright = hot); <b>gray</b> — plain grayscale.</td></tr> bright = hot); <b>gray</b> — plain grayscale.</td></tr>
<tr><th>Window low % / high %</th><td>The brightness window, as percentiles pooled over <tr><th>Window low % / high %</th><td>The brightness window, expressed as percentiles
the whole session (default 199 %). Lower the high % / raise the low % for more pooled across the whole session (default 199 %). Decrease the high % or increase the
contrast; tick <b>Absolute min/max</b> to use the true extremes.</td></tr> low % for greater contrast; enable <b>Absolute min/max</b> to use the true extremes.</td></tr>
<tr><th>Embed metadata</th><td>When ticked (default), the stretched PNGs also get GPS <tr><th>Embed metadata</th><td>When enabled (default), the stretched PNGs also receive
and orientation EXIF written in, so they are self-contained.</td></tr> GPS and orientation EXIF, making them self-contained.</td></tr>
<tr><th>Parallel workers</th><td>The number of frames rendered and tagged concurrently
(default: derived from the available CPU cores). Higher values are faster on SSD/NVMe
storage.</td></tr>
</table> </table>
<h3>How to use</h3> <h3>How to use</h3>
<ol> <ol>
<li>Pick the <b>session folder</b> and <b>palette</b>.</li> <li>Select the <b>session folder</b> and <b>palette</b>.</li>
<li>Click <b>Preview palettes</b> to compare gray / inferno / ironbow on a sample <li>Click <b>Preview palettes</b> to compare gray, inferno and ironbow on a sample
frame before committing.</li> frame before processing.</li>
<li>Click <b>Stretch all frames</b>. Output goes to <li>Click <b>Stretch all frames</b>. Output is written to
<code>&lt;session&gt;/thermal_stretched</code> unless you set an output folder.</li> <code>&lt;session&gt;/thermal_stretched</code> unless an output folder is specified.</li>
</ol> </ol>
</section> </section>
<section id="map"> <section id="map">
<h2><span class="pill blue">Tab 3</span> Map</h2> <h2><span class="pill blue">Tab 3</span> Map</h2>
<p>Plots each photo as a <b>trigger point</b> (its GPS position) and, optionally, an <p>Plots each image as a <b>trigger point</b> (its GPS position) and, optionally, as an
<b>oblique footprint</b> — the patch of ground the photo covers — on OpenStreetMap. <b>oblique footprint</b> — the area of ground the image covers — on OpenStreetMap.
Cameras are <span class="pill blue">blue</span>, thermal is Cameras are shown in <span class="pill blue">blue</span>, thermal in
<span class="pill orange">orange</span>.</p> <span class="pill orange">orange</span>.</p>
<h3>How to use</h3> <h3>How to use</h3>
<ol> <ol>
<li><b>Tick the sessions</b> to plot (use <kbd>All</kbd>/<kbd>None</kbd>; <kbd>Refresh</kbd> <li><b>Select the sessions</b> to display (use <kbd>All</kbd>/<kbd>None</kbd>;
rescans the folder). Several flight strips can be shown together.</li> <kbd>Refresh</kbd> rescans the folder). Several flight strips may be shown together.</li>
<li>Set the <b>options</b> (see below), then click <b>Show on map</b>. The map zooms to <li>Set the <b>options</b> (described below), then click <b>Show on map</b>. The map
fit the data.</li> zooms to fit the data.</li>
</ol> </ol>
<h3>Options</h3> <h3>Options</h3>
<table> <table>
<tr><th>Ground elev (m)</th><td>Terrain height used to project the footprints (flat-ground <tr><th>Ground elev (m)</th><td>Terrain height used to project the footprints (flat-ground
assumption). Default 110 m — set this to your site's elevation.</td></tr> assumption). Default 110 m; set this to the elevation of your site.</td></tr>
<tr><th>Thermal FOV H/V</th><td>Field of view of the thermal camera, needed for its <tr><th>Thermal FOV H/V</th><td>Field of view of the thermal camera, required for its
footprints. Pre-filled for the FLIR A65 25° lens (25° × 20°).</td></tr> footprints. Pre-filled for the FLIR A65 25° lens (25° × 20°).</td></tr>
<tr><th>Thermal off-nadir</th><td>Mounting tilt of the thermal camera (0 = straight down).</td></tr> <tr><th>Thermal off-nadir</th><td>Mounting tilt of the thermal camera (0 = straight down).</td></tr>
<tr><th>Plot every Nth</th><td><i>auto</i> thins very large surveys so the map stays <tr><th>Plot every Nth</th><td><i>auto</i> reduces very large surveys so the map remains
responsive; set a number to override.</td></tr> responsive; enter a number to override.</td></tr>
<tr><th>Trigger points / Footprints / Cameras / Thermal</th><td>Toggle what is drawn.</td></tr> <tr><th>Trigger points / Footprints / Cameras / Thermal</th><td>Control which layers are drawn.</td></tr>
</table> </table>
<div class="note"><b>Needs an internet connection</b> for the map tiles.</div> <div class="note"><b>Needs an internet connection</b> for the map tiles.</div>
<h3>How footprints are computed</h3> <h3>How footprints are computed</h3>
@ -173,20 +182,23 @@ new folder.</p>
each camera's fixed mounting — thermal looks straight down (mounted vertical to the each camera's fixed mounting — thermal looks straight down (mounted vertical to the
flight line); the RGB cameras look forward-and-down by their off-nadir angle flight line); the RGB cameras look forward-and-down by their off-nadir angle
(cam25 = 25°, cam45 = 45°) and are mounted landscape across the flight line.</p> (cam25 = 25°, cam45 = 45°) and are mounted landscape across the flight line.</p>
<div class="warn">The footprints assume flat ground at the elevation you set. If the whole <div class="warn">The footprints assume flat ground at the elevation you specify. If the
swath appears on the <b>wrong side</b> of the flight line compared to reality, ask your entire swath appears on the <b>wrong side</b> of the flight line relative to reality, flip
developer to flip the <code>SCAN_SIGN</code> setting in <code>session_map.py</code>.</div> the <code>SCAN_SIGN</code> setting at the top of <code>session_map.py</code>.</div>
</section> </section>
<section id="cli"> <section id="cli">
<h2>Command line (optional)</h2> <h2>Command line (optional)</h2>
<p>The embed and stretch steps also run without the GUI:</p> <p>The embed and stretch steps may also be run without the graphical interface:</p>
<pre><code>python embed_metadata.py [SESSION] [--out DIR] [--gps-source position|gps] [--dry-run] <pre><code>python embed_metadata.py [SESSION] [--out DIR] [--gps-source position|gps]
[--workers N] [--dry-run]
python stretch_thermal.py [SESSION] [--colormap inferno|ironbow|gray] python stretch_thermal.py [SESSION] [--colormap inferno|ironbow|gray]
[--lo-pct 1 --hi-pct 99 | --absolute | --lo N --hi N] [--lo-pct 1 --hi-pct 99 | --absolute | --lo N --hi N]
[--out DIR] [--no-embed-exif] [--sample]</code></pre> [--out DIR] [--no-embed-exif] [--workers N] [--sample]</code></pre>
<p class="muted">With no <code>SESSION</code> they use the newest session found nearby.</p> <p class="muted">If <code>SESSION</code> is omitted, the most recent session found nearby is
used. <code>--workers</code> sets the number of parallel workers (default: derived from the
CPU core count).</p>
</section> </section>
<section id="trouble"> <section id="trouble">
@ -194,7 +206,11 @@ python stretch_thermal.py [SESSION] [--colormap inferno|ironbow|gray]
<table> <table>
<tr><th>“exiftool could not be found”</th> <tr><th>“exiftool could not be found”</th>
<td>Install it once: <code>winget install OliverBetz.ExifTool</code> (or <td>Install it once: <code>winget install OliverBetz.ExifTool</code> (or
<code>choco install exiftool</code>), then reopen the program.</td></tr> <code>choco install exiftool</code>), then restart the application.</td></tr>
<tr><th>Stretched or embedded images have no GPS</th>
<td>exiftool writes metadata via a temporary copy, so a full (or nearly full) disk can
drop the GPS tag. Free up disk space and run the step again. The tools verify that GPS
was written and report a clear error rather than producing files without it.</td></tr>
<tr><th>Map is blank / tiles don't load</th> <tr><th>Map is blank / tiles don't load</th>
<td>The map needs internet access for OpenStreetMap tiles.</td></tr> <td>The map needs internet access for OpenStreetMap tiles.</td></tr>
<tr><th>No sessions in the Map list</th> <tr><th>No sessions in the Map list</th>
@ -208,7 +224,7 @@ python stretch_thermal.py [SESSION] [--colormap inferno|ironbow|gray]
</section> </section>
</main> </main>
<footer>FireMapper — Session Post-Processing · GGS Speyer. Originals are never modified; <footer>FireMapper — Session Post-Processing · GGS Speyer. Original files are never modified;
all results are written to new folders.</footer> all results are written to new folders.</footer>
</body> </body>
</html> </html>